Creep Life Predictions by Machine Learning Methods for Ferritic Heat Resistant Steels

被引:0
|
作者
Sakurai, Junya [1 ,2 ]
Demura, Masahiko [2 ,3 ]
Inoue, Junya [4 ,5 ]
Yamazaki, Masayoshi [3 ]
机构
[1] Univ Tokyo, Inst Ind Sci, Tokyo, Japan
[2] Natl Inst Mat Sci, Res Network & Facil Serv Div, 1-1 Namiki, Tsukuba, Ibaraki 3050044, Japan
[3] Natl Inst Mat Sci, Res & Serv Div Mat Data & Integrated Syst, Tsukuba, Ibaraki, Japan
[4] Univ Tokyo, Inst Ind Sci, 5-1-5 Kashiwanoha, Kashiwa, Chiba 2778574, Japan
[5] Univ Tokyo, Res Ctr Adv Sci & Technol, 4-6-1 Komaba,Meguro ku, Tokyo, Japan
关键词
creep; ferritic heat-resistant steel; prediction; creep rupture time; machine learning; RUPTURE STRENGTH; MOLYBDENUM;
D O I
10.2355/isijinternational.ISIJINT-2023-266
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
We have attempted to predict creep rupture time for a wide range of ferritic heat resistant steels with machine learning methods using the NIMS Creep Data Sheets (CDSs). The datasets consisted of commercial-steel data from 27 CDSs, including those on various grades of carbon, low- alloy, and high-Cr steels. The prediction models were constructed using three methods, namely, support vector regression (SVR), random forest, and gradient tree boosting with 5 132 training data, to predict log rupture time from the chemical composition (19 elements), test temperature, and stress. Evaluation with 451 test data proved that all three models exhibited a high predictivity of creep rupture time. In particular, the performance of the SVR model was the highest with a root mean squared error as low as 0.14 over the log rupture time; this value means that, on average, the prediction error had a factor of 1.38 (= 10(0.14)). The high predictivity achieved without using microstructure information was presumably due to the fact that the data used were for commercial steels in which there should be a correlation between the chemical composition and the microstructure. We confirmed that the prediction did not work exceptionally well for two heats having the same composition but different microstructures with and without stress-relief annealing. The predictivity could be markedly increased by adding the 0.2% proof stress at the creep test temperature as one of the explanatory variables. As a demonstration of the prediction model, the effect of elements was evaluated in modified 9Cr-1Mo steels.
引用
收藏
页码:1786 / 1797
页数:12
相关论文
共 50 条
  • [41] Advances in Creep Damage/Life Assessment Technology for Creep Strength Enhanced Ferritic Steels
    Masuyama, Fujimitsu
    6TH INTERNATIONAL CONFERENCE ON CREEP, FATIGUE AND CREEP-FATIGUE INTERACTION, 2013, 55 : 591 - 598
  • [42] MATHEMATICAL INVESTIGATION OF INFLUENCE OF CHEMICAL COMPOSITION AND HEAT-TREATMENT ON CREEP-RUPTURE STRENGTH OF CREEP-RESISTANT FERRITIC STEELS
    DIEHL, H
    GRANACHER, J
    WIEGAND, H
    ARCHIV FUR DAS EISENHUTTENWESEN, 1975, 46 (06): : 407 - 410
  • [43] Creep curve analysis Ω with method and effect of creep strengthening mechanism on Ω value in 9Cr ferritic heat-resistant steels
    Mitsuhara, Masatoshi
    Terada, Daisuke
    Ikeda, Ken-ichi
    Nakashima, Hideharu
    TETSU TO HAGANE-JOURNAL OF THE IRON AND STEEL INSTITUTE OF JAPAN, 2008, 94 (03): : 99 - 105
  • [44] The concept of "eBSD strain analysis" and its application to creep and creep-fatigue damage assessment of ferritic and austenitic heat resistant steels
    Fujiyama K.
    Kimachi H.
    Watanabe Y.
    Hijikuro K.
    Tsuboi T.
    Strength, Fracture and Complexity, 2011, 7 (02) : 123 - 135
  • [45] Evaluation of creep rupture strength of high nitrogen ferritic heat-resistant steels using small punch creep testing technique
    Naveena
    Komazaki, Shin-ichi
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2016, 676 : 100 - 108
  • [46] STRESS DEPENDENCE OF DEGRADATION AND CREEP RUPTURE LIFE OF CREEP STRENGTH ENHANCED FERRITIC STEELS
    Kimura, K.
    Sawada, K.
    Kushima, H.
    Toda, Y.
    ADVANCES IN MATERIALS TECHNOLOGY FOR FOSSIL POWER PLANTS, 2008, : 601 - 615
  • [47] An overview on the novel heat-resistant ferritic stainless steels
    Zhao, Yang
    Liu, Hou-Long
    Wei, Liang-Liang
    Chen, Li-Qing
    TUNGSTEN, 2023, 5 (04) : 467 - 480
  • [48] An overview on the novel heat-resistant ferritic stainless steels
    Yang Zhao
    HouLong Liu
    LiangLiang Wei
    LiQing Chen
    Tungsten, 2023, 5 (04) : 467 - 480
  • [49] An overview on the novel heat-resistant ferritic stainless steels
    Yang Zhao
    Hou-Long Liu
    Liang-Liang Wei
    Li-Qing Chen
    Tungsten, 2023, 5 : 467 - 480
  • [50] An overview on the novel heat-resistant ferritic stainless steels
    Yang Zhao
    Hou-Long Liu
    Liang-Liang Wei
    Li-Qing Chen
    Tungsten, 2023, (04) : 467 - 480